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Biomedical subjects

M L Tykocinski

Publications and source records attributed to M L Tykocinski.

At least 37 records · Page 2Linked to original sources

Negative signaling by anti-HLA class I antibodies is dependent upon two triggering events.

mAb with specificity for the alpha3 domain of HLA class I antigens, such as mAb TP25.99 and W6/32, are capable of inhibiting the proliferation of stimulated T cells in vitro by binding to their surface HLA class I antigens. The inhibitory potential of another HLA class I alpha3 domain-specific mAb, A1.4, was evaluated. In contrast to mAb TP25.99 and W6/32, which routinely inhibited superantigen (SEB) stimulation of T cells by >90%, mAb A1.4 at equivalent concentrations demonstrated only 20-50% inhibition. Univalent Fab fragments of all three mAb lacked inhibitory activity. Interestingly, however, by combining univalent W6/32 (or TP25.99) Fab fragments with intact, bivalent mAb A1.4 (at a non-inhibitory, sub-threshold concentration of 1 microg/ml), significant inhibition of SEB-driven T cell proliferation was obtained. Inhibition by the anti-HLA class I mAb W6/32 and TP25.99 was evident even when SEB was used in conjunction with paraformaldehyde-fixed HLA class I-, class II+ Daudi cells, suggesting that the inhibitory activity of these mAb results from direct HLA class I epitope engagement on the T cell. These findings suggest that effective antibody-mediated induction of the HLA class I inhibitory pathway within T cells is dependent upon two separable molecular triggers at the T cell surface. The first can be delivered by univalent mAb derivatives that engage one or more critical HLA class I epitope(s). The second requires intact mAb, though seems to be less selective as to the HLA class I specificity. This model may explain why some, but not all, anti-HLA class I mAb are inhibitory when used singly. Achieving synergies between a wider array of anti-HLA class I mAb and their derivatives may provide a path for more effectively tapping into the HLA class I inhibitory pathway in a therapeutic context.

Animals↗

A novel class of cell surface glycolipids of mammalian cells. Free glycosyl phosphatidylinositols.

Glycosyl phosphatidylinositol (GPI) lipids function as anchors of membrane proteins, and free GPI units serve as intermediates along the path of GPI-anchor biosynthesis. By using in vivo cell surface biotinylation, we show that free GPIs: 1) can exit the rough endoplasmic reticulum and are present on the surface of a murine EL-4 T-lymphoma and a human carcinoma cell (HeLa), 2) arrive at the cell surface in a time and temperature-dependent fashion, and 3) are built on a base-labile glycerol backbone, unlike GPI anchors of surface proteins of the same cells. The free GPIs described in this study may serve as a source of hormone-sensitive phosphoinositol glycans. The absence of free GPIs from the cell surface may also account for the growth advantage of blood cells in paroxysmal nocturnal hemoglobinuria.

Animals↗

Functional dissociation of CD8 alpha's Ig homologue and connecting peptide domains.

The contribution of the CD8 alpha.IgV homologue domain to class I MHC binding was evaluated using a series of chimeric human CD8 alpha:Fc polypeptides incorporating alternative CD8 alpha extracellular domain components. Using a nonisotopic cellfree physical binding assay, those Fc chimeras encompassing the CD8 alpha.IgV homologue domain only (dissociated from the 48-amino acid CD8 alpha connecting peptide) were shown to retain the capacity of the complete CD8 alpha extracellular domain to bind to a recombinant soluble class I MHC alpha 3 domain unit or to intact class I MHC. The specificity of the CD8 alpha:class I MHC alpha 3 domain interaction was verified by mAb and soluble polypeptide blocking experiments. Furthermore, co-precipitation of an Fc chimera incorporating only the CD8 alpha.IgV homologue domain and a recombinant soluble class I MHC alpha 3 domain unit was accomplished. In addition, a glycosylphosphatidylinositol (GPI)-modified variant of the CD8 alpha.IgV homologue domain was generated via chimerization with the GPI signal sequence from decay-accelerating factor. GPI anchorage for this truncated CD8 alpha polypeptide was verified, and its capacity to promote intercellular adhesion through class I MHC binding was shown in a cell:cell binding assay. The findings indicate that the CD8 alpha.IgV homologue domain acts as an independent structural unit when dissociated from the CD8 alpha connecting peptide, and in so doing retains class I MHC binding capacity. This further establishes the principle that Ig superfamily domains from receptor:counter-receptor pairs can interact with each other as isolated units, providing an experimental path for tailoring therapeutically useful IgSF protein derivatives.

Amino Acid Sequence↗

Platelet immunoregulatory factors.

A number of soluble and membrane-associated proteins are known to mediate platelet:leukocyte interactions. Platelet-derived factors that have attracted the most attention to date include transforming growth factor beta, interleukin 1 and platelet factor 4. Recently, we have uncovered another protein within platelets that has leukocyte modulatory activity. It was previously characterized as an endometrial glycoprotein named placental protein 14 (PP14) with suppressive effects upon lymphocyte proliferation, pro-inflammatory cytokine production and natural killer cell function. The "hematopoietic" PP14 derived from cells of the megakaryocytic lineage shares this immunosuppressive property, as evaluated by two-way mixed lymphocyte cultures. Interestingly, two alternatively spliced hematopoietic PP14 mRNAs have been cloned which differ in their encoded proteins. Cell-free translation and transfection analyses have verified the translatability of both PP14 mRNA species and allowed for the analysis of their glycosylation properties. PP14, a member of the lipocalin structural superfamily of proteins, now offers an intriguing new link between the coagulation and immune systems.

Blood Platelets↗

Cell-surface engineering with GPI-anchored proteins.

Protein engineering of cell surfaces is a potentially powerful technology through which the surface protein composition of cells can be manipulated without gene transfer. This technology exploits the fact that proteins that are anchored by glycoinositol phospholipids (GPIs), when purified and added to cells in vitro, incorporate into their surface membranes and are fully functional. By substituting 3'-mRNA end sequence of naturally GPI-anchored proteins (i.e., a sequence that contains the signals that direct GPI anchoring) for endogenous 3'-mRNA end sequence, virtually any protein of interest can be expressed as a GPI-anchored derivative. The GPI-anchored product then can be purified from transfectants and the purified protein used to "paint" any target cell. Such protein engineering or "painting" of the cell surface offers several advantages over conventional gene transfer. Among these advantages are that 1) GPI-anchored proteins can be painted onto cells that are difficult to transfect, 2) cells can be altered immediately without previous culturing, 3) the amount of protein added to the surface can be precisely controlled, and 4) multiple GPI-anchored proteins can be sequentially or concurrently inserted into the same cells. Emerging applications for the technology include its use for the analysis of complex cell-surface interactions, the engineering of antigen presenting cells, the development of cancer vaccines, and possibly the protection against graft rejection.

Amino Acid Sequence↗

Developmentally imprinted genes as markers for bladder tumor progression.

PURPOSE: Developmentally imprinted genes, such as H19 and insulin-like growth factor-II (IGF-II), play an important role during human embryogenesis and also have been implicated in the pathogenesis of embryonal tumors of childhood. Since H19 is expressed in human fetal bladder, we evaluated 35 bladder carcinomas for H19 expression by in situ hybridization analysis and correlated expression with tumor grade. As a prelude to gene transfer studies to determine if H19 is a bladder tumor oncogene, we also evaluated bladder cell lines for expression of H19, IGF-II, IGF-I and the type I IGF receptor. MATERIALS AND METHODS: H19 expression was evaluated by in situ hybridization analysis in bladder tumor specimens. Northern analysis was used to evaluate the expression of H19, IGF-II, IGF-I and the type I IGF receptor in bladder cell lines. RESULTS: H19 was expressed preferentially in advanced stage tumors: 2 of 12 grade I tumors were H19 positive, whereas 9 of 11 grade II and 7 of 10 grade III tumors expressed H19 (p = 0.004). Additionally, 6 of 6 carcinoma in situ tumors were H19 positive, whereas normal bladder mucosa cells were H19 negative. We found that 3 of 11 cell lines (HT-1376, HT-1197 and 5637) express high levels of H19 mRNA, and each of these cell lines and J82 also express IGF-II. All cell lines examined expressed the type I IGF receptor, whereas there was no detectable IGF-I mRNA. CONCLUSIONS: These data demonstrate that H19 is an oncodevelopmental marker of bladder tumor progression and raise the possibility that H19 may have oncogenic properties in bladder cancer.

Biomarkers, Tumor↗

Glycosylphosphatidylinositol-modified murine B7-1 and B7-2 retain costimulator function.

Glycosylphosphatidylinositol (GPI)-modified variants of murine B7-1 and B7-2 cell surface costimulators were produced via chimerization with alternative GPI-modification signal sequences from decay-accelerating factor (DAF). GPI anchorage was verified by demonstrating phosphatidylinositol-specific phospholipase C (PI-PLC) sensitivity of the chimeric polypeptides in both immunofluorescence/flow-cytometric and immunoprecipitation analyses. The various GPI-modified chimeric B7-1:DAF and B7-2:DAF polypeptides were shown to retain costimulator function, in both an in vitro proliferation assay and an in vivo triggering of cytotoxicity assay. The findings indicate that costimulator function for both B7-1 and B7-2 is not dependent upon native hydrophobic transmembrane anchorage. Moreover, the functionality of the GPI-modified variants in enhancing the immunogenicity of the murine T lymphoma line EL-4 suggests a novel route for generating APC-centered immunotherapeutics, including cellular cancer vaccines, that is based upon protein transfer of GPI-modified costimulators.

Animals↗

Gene therapy of murine teratocarcinoma: separate functions for insulin-like growth factors I and II in immunogenicity and differentiation.

Teratocarcinoma is a germ-line carcinoma giving rise to an embryoid tumor with structures derived from the three embryonic layers: mesoderm, endoderm, and ectoderm. Teratocarcinoma is widely used as an in vitro model system to study regulation of cell determination and differentiation during mammalian embryogenesis. Murine embryonic carcinoma (EC) PCC3 cells express insulin-like growth factor I(IGF-I) and its receptor, while all derivative tumor structures express IGF-I and IGF-II and their receptors. Therefore the system lends itself to dissect the role of these two growth factors during EC differentiation. With an episomal antisense strategy, we define a role for IGF-I in tumorigenicity and evasion of immune surveillance. Antisense IGF-I EC transfectants are shown to elicit a curative anti-tumor immune response with tumor regression at distal sites. In contrast, IGF-II is shown to drive determination and differentiation in EC cells. Since IGF-I and IGF-II bind to type I receptor and antisense sequence used for IGF-II cannot form duplex with endogenous IGF-I transcripts, it follows that this receptor is not involved in determination and differentiation.

Animals↗

Bone marrow stromal cell blockade of human leukemic cell differentiation.

Bone marrow (BM) stromal cell inhibition of leukemic cell differentiation was studied in cellular coculture experiments. In coculture, a significant percentage of cells from the human myeloid leukemic cell lines HL-60, PLB-985, and K562 adhere to fibroblastic KM-102 BM stromal cells. A sensitive two-color immunofluorescence assay was developed to monitor stromal cellular effects upon leukemic cell differentiation. After chemical induction with 1 alpha,25-dihydroxyvitamin D3, strongly adherent HL-60 and PLB-985 cells were inhibited from differentiating into more mature monocytic cells, as measured by the monocytic surface marker CD14. In contrast, loosely adherent and nonadherent HL-60 and PLB-985 leukemic cells in the same cocultures, as well as both adherent and nonadherent K562 cells induced with phorbol ester, were not blocked in their capacity to differentiate. Scanning electron microscopy and intercellular dye transfer experiments correlated intimate stromal cell/leukemic cell interaction and intercellular communication with the blockade of leukemic cell differentiation. These studies indicate that there is significant variability among leukemic lines with respect to the nature of their adhesion to stromal cells. Moreover, the data implicate gap-junction formation as a potentially significant event in stromal cell-mediated leukemic cell regulation.

Antigens, CD↗

A glycosylphosphatidylinositol-anchored cytokine can function as an artificial cellular adhesin.

A novel strategy for altering the adhesive properties of cells has been developed which is based upon the use of artificial adhesins. Specifically, a glycosylphosphatidylinositol (GPI)-modified variant of the cytokine macrophage colony stimulating factor (M-CSF), designated M-CSF.GPI, was expressed on the surface of human bone marrow stromal cells. A chimeric M-CSF:decay-accelerating factor expression construct was used for M-CSF.GPI expression. Cell:cell binding assays established that this artificially membrane-tethered cytokine functions as a potent cellular adhesin, allowing for enhanced binding to M-CSF receptor-expressing cellular transfectants. Antibody blocking analyses confirmed the M-CSF:M-CSF receptor dependence of the enhanced intercellular binding. This capacity to direct the cellular interactive repertoire of selected cells can in principle be applied to other cell types and other molecular pairs to be used in cell-based therapies.

Cell Adhesion↗

Alloantigenic recognition of artificial glycosyl phosphatidylinositol-anchored HLA-A2.1.

Alloantigen presentation by GPI-reanchored variants of the human class I MHC molecule HLA-A2.1 was studied in human cellular systems. To this end, we generated chimeric coding sequences for two GPI-modified HLA-A2.1 heavy chain derivatives. In these chimeras, the coding sequence for the HLA-A2.1 heavy chain was fused in-frame to alternative overlapping sequences from the 3'-end of human DAF containing the GPI-modification signal sequence. The encoded polypeptides HLA-A2.1:DAF-S and HLA-A2.1:DAF-L differed by 53 amino acids of additional DAF sequence in the latter. Both were detected on stably transfected C1R cell surfaces by HLA-A2.1-specific mAb, and their GPI-modification was confirmed by PI-PLC enzymatic cleavage. Immunoprecipitation analysis of surface-biotinylated C1R transfectants revealed heterodimeric association for both HLA-A2.1:DAF-L and HLA-A2.1:DAF-S heavy chains with beta 2m. Alloantigenic stimulation by, and cytotoxic recognition of, both HLA-A2.1:DAF-S/C1R and HLA-A2.1/CIR cells was observed; however, HLA-A2.1:DAF-L/C1R cells could not serve as allostimulators or allotargets. These findings establish that polymorphic human class I MHC molecules can function, when artificially GPI-reanchored, as alloantigenic targets. Moreover, the data suggest that the sequence bridging the HLA-A2 extracellular domain and the membrane can influence alloantigenic presentation.

Animals↗

Protein transfer of preformed MHC-peptide complexes sensitizes target cells to T cell cytolysis.

Recombinant GPI-anchored HLA-A2.1 (HLA-A2.1-GPI/beta 2m) was used as a protein transfer vehicle to deliver a hepatitis B virus antigenic peptide to the surfaces of cytotoxic T cell targets. Empty HLA-A2.1-GPI/beta 2m was first produced in D. melanogaster cotransfectants and immunoaffinity purified. Cell coating with HLA-A2.1-GPI/beta 2m was shown to occur rapidly, and to be protein concentration dependent. Protein-transferred HLA-A2.1-GPI/beta 2m effectively presented a hepatitis B virus peptide to peptide-specific HLA-A2.1-restricted T cell clones in cytotoxicity assays. Protein transfer of functional GPI-modified class I MHC-antigenic peptide complexes represents a novel strategy for delivering functional antigenic complexes to cell surfaces that bypasses limitations of gene transfer and permits control of antigenic peptide densities at cell surfaces.

Animals↗

Addition of lipid substituents of mammalian protein glycosylphosphoinositol anchors.

A single metabolic path leading to synthesis of ether lipids is known in animal cells, the major products of which are plasmalogens. To learn whether this peroxisomal path is also responsible for the synthesis of base-resistant lipid components of glycosylphosphoinositol (GPI)-anchored membrane proteins, we have investigated the structure of anchor precursor mannolipids both in wild-type cells (CHO-K1 and a macrophage-like line, RAW 264.7) and in two corresponding mutant cells in which ether lipid biosynthesis is severely impaired. We observe that the precursor mannolipids of both the wild-type and mutant cells do not include alkylglycerol. Nevertheless, both wild-type and mutant cells express cell surface GPI-anchored placental alkaline phosphatase (AP) which includes alkali-resistant hydrophobic chains in its anchor moiety. Thus, (i) in normal AP GPI anchor synthesis, any ether-linked substituents must be added either immediately before, during, or after anchor addition to AP, and (ii) the classical peroxisomal path for ether lipid synthesis appears not to contribute to the synthesis of GPI anchors.

Alkaline Phosphatase↗

Hematopoietic placental protein 14. An immunosuppressive factor in cells of the megakaryocytic lineage.

Placental protein 14 (PP14), an immunosuppressive molecule previously known to be expressed in the female and male reproductive tracts only, was shown to be expressed by hematopoietic cells of the megakaryocytic lineage. Northern blot analysis confirmed the induction specificity of PP14 mRNA in phorbol ester-treated K562 cells. Potent immunosuppressive activity in conditioned medium from phorbol ester-treated K562 cells was attributed to hematopoietic PP14 by anti-PP14 antibody blocking. Immunoprecipitation with anti-PP14 antibodies from conditioned medium revealed two distinct PP14 protein isoforms, designated PP14.1 and PP14.2. Polymerase chain reaction cloning and analysis demonstrated the presence of distinct mRNA counterparts to PP14.1 and PP14.2 that had not been resolved by Northern blot analyses. Hematopoietic PP14.1 mRNA corresponds in size to endometrial PP14 mRNA, whereas the smaller hematopoietic PP14.2 mRNA displays an internal in-frame 66-nucleotide deletion that can be explained by alternative splicing and predicts a 22-amino-acid deletion in the encoded gene product. Both PP14 mRNA isoforms were additionally detected by reverse transcriptase polymerase chain reaction analyses in two human megakaryocytic cell lines and in normal human megakaryocytes and platelets. PP14 mRNA was not detected by reverse transcriptase polymerase chain reaction in a panel of nonhematopoietic, nonendometrial tissues examined. The finding of hematopoietic PP14 within the megakaryocytic lineage provides an additional regulatory link between the coagulation and immune systems in normal and pathological settings.

Base Sequence↗

Treatment and prevention of rat glioblastoma by immunogenic C6 cells expressing antisense insulin-like growth factor I RNA.

Rat C6 glioma cells express insulin-like growth factor I (IGF-I) and form rapidly growing tumors in syngeneic animals. When transfected with an episome-based vector encoding antisense IGF-I complementary DNA, these cells lost tumorigenicity. Subcutaneous injection of IGF-I antisense-transfected C6 cells into rats prevented formation of both subcutaneous tumors and brain tumors induced by nontransfected C6 cells. The antisense-transfected cells also caused regression of established brain glioblastomas when injected at a point distal to the tumor. These antitumor effects result from a glioma-specific immune response involving CD8+ lymphocytes. Antisense blocking of IGF-I expression may reverse a phenotype that allows C6 glioma cells to evade the immune system.

Animals↗